Active Cells, Biochemistry & Physiology Chemistry

Shapeshifting Molecules

In plain English

AI plain-English summary

A molecule’s atomic sequence—the order of its building blocks—normally stays fixed, but these ‘shapeshifting’ molecules can rearrange their own atoms to match their surroundings. Conventional molecules are rigid; their shape determines how they interact with other molecules, such as proteins. This project tackles a fundamental gap: no one has yet controlled molecules that deliberately change their atomic sequence in response to their environment. The team will develop methods to direct this shape-shifting, then apply it to three areas: catalysis, drugs, and plastics. If successful, the research could yield plastics made from molecular networks that spontaneously tangle and untangle, giving them unusual strength and flexibility. In medicine, shapeshifting molecules could mould themselves to fit complex biological targets involved in disease, potentially improving drug precision. This is primarily fundamental science—establishing a new chemical principle. Similar foundational work on molecular structure has historically led to unexpected breakthroughs in materials and biochemistry. The project will also answer open questions about how these adaptable molecules change structure when they interact with others, laying groundwork for future applications in soft materials and engineering.

View original technical description
Different sequences of atoms give molecules with distinct shapes. This shape is key to a molecule's properties, e.g., its biological effect when binding proteins. Conventionally, the atomic sequence of a molecule is fixed. This proposal, however, investigates molecules that break free from this dogma. 'Shapeshifting' molecules adapt their atomic sequences to match their surroundings. During this Early Career Fellowship, the project team and I will establish methods to control shapeshifting molecules. We will pioneer their applications in catalysis, drugs, and plastics. We expect to discover rare properties, such as plastics made from molecular networks that spontaneously tangle and untangle, making them uniquely strong and flexible. We will also answer open questions about how shapeshifting molecules adapt when they interact with other molecules, quantifying changes in their structures. This knowledge will allow us to make shapeshifting molecules that mould themselves to match complex biological targets implicated in disease. By the end of the grant, we will have shown how shapeshifting molecules differ from conventional materials. We will have also demonstrated the first of their many possible applications in biology and soft materials. These fundamental, chemical advances establish a new research area that will have broad impacts in biochemistry, materials physics and engineering.

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Researchers

Paul McGonigal (Principal Investigator)

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Original classification

Fellowship

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